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Geometric effects induce anomalous size-dependent active transport in structured environments

Pooja Chopra, David Quint*, Ajay Gopinathan, and Bin Liu†

  • Department of Physics, University of California, 5200 North Lake Road, Merced, California 95343, USA

  • *Present address: Physical and Life Sciences, Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, California 94550, USA.
  • †bliu27@ucmerced.edu

Phys. Rev. Fluids 7, L071101 – Published 11 July, 2022

DOI: https://doi.org/10.1103/PhysRevFluids.7.L071101

Abstract

The variations of transport efficiency in structured environments between distinct individuals in actively self-propelled systems are both hard to study and poorly understood. Here, we study the transport of a nontumbling Escherichia coli strain, an active-matter archetype with intrinsic size variation but fairly uniform speed, through a periodic pillar array. We show that long-term transport switches from a trapping dominated state for shorter cells to a much more dispersive state for longer cells above a critical bacterial size set by the pillar array geometry. Using a combination of experiments and modeling, we show that this anomalous size dependence arises from an enhancement of the escape rate from trapping for longer cells caused by nearby pillars. Our results show that geometric effects can lead to size being a sensitive tuning knob for transport in structured environments, with implications in general for active matter systems and, in particular, for the morphological adaptation of bacteria to structured habitats, spatial structuring of communities, and for antibiofouling materials design.

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